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EP 2 983 455 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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29.11.2017 Bulletin 2017/48 |
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Date of filing: 05.08.2015 |
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International Patent Classification (IPC):
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TUBULAR CHOKED WAVEGUIDE APPLICATOR
ROHRFÖRMIGE GESTAUTES WELLENLEITERAPPLIKATOR
APPLICATEUR DE GUIDE D'ONDE À ÉTRANGLEMENT TUBULAIRE
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
07.08.2014 US 201414453820
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Date of publication of application: |
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10.02.2016 Bulletin 2016/06 |
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Proprietor: Industrial Microwave Systems, L.L.C. |
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Harahan LA 70123 (US) |
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Inventors: |
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- Wilber, William
Killingworth CT 06419 (US)
- Shuping, Donald
Pittsboro, NC 27312 (US)
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Representative: Walker, Ross Thomson |
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Forresters IP LLP
Skygarden
Erika-Mann-Strasse 11 80636 München 80636 München (DE) |
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References cited: :
DE-B3-102013 009 064 US-A- 3 590 202 US-A- 4 488 027
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GB-A- 2 262 421 US-A- 3 858 022
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
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BACKGROUND
[0001] The invention relates generally to microwave heating apparatus and more particularly
to waveguide applicators for heating or drying products with microwaves.
[0002] Microwaves are often used in industrial processes to heat or dry products. For example,
U.S. Patent No. 4,497,759 describes a waveguide system for dielectrically heating a crystalline polymer drawn
into a rod fed continuously through a circular waveguide applicator along its centerline.
The TM01 mode is used to concentrate the heating along the centerline. The narrow
waveguide applicator has an inner diameter of 95.6 mm, which limits its use to small-diameter
products, such as drawn polymer rods. For continuous heating and drying processes
in which individual products or a product strand is fed continuously through a waveguide
applicator, openings are provided at opposite ends of the applicator for product entry
and exit. But microwave radiation can also leak through the openings, especially if
the openings are large to accommodate large-diameter products.
[0003] GB 2 262 421 A discloses a microwave heating apparatus to remove organic materials from a gas, wherein
the microwave heating apparatus comprises at both opening ends of a tubular heating
chamber a reactive choke connected in series with a resistive choke, in order to avoid
leakage of microwave energy outside the heating chamber.
SUMMARY
[0004] A microwave heating apparatus embodying features of the invention is defined by claim
1.
BRIEF DESCRIPTION OF THE DRAWINGS
[0005] These features of the invention are described in more detail in the following description,
appended claims, and accompanying drawings, in which:
FIG. 1 is an isometric view of a tubular waveguide applicator embodying features of
the invention;
FIG. 2 is a cross section of the waveguide applicator of FIG. 1;
FIG. 3 is an enlarged cross section of a reactive choke in the applicator of FIG.
1;
FIG. 4 is an enlarged cross section of a resistive choke in the application of FIG.
1; and;
FIG. 5 is a cross section of the tubular applicator of FIG. 1 showing the electric-field
pattern.
DETAILED DESCRIPTION
[0006] A microwave heating apparatus embodying features of the invention, including a tubular
waveguide applicator, is shown in FIGS. 1 and 2. The applicator 10 shown in this example
is constructed of a single circular waveguide section having a cylindrical outer wall
11 forming a heating chamber. But the applicator could be constructed of a series
of individual circular waveguide sections connected end to end. The applicator 10
has circular flanges 12 at each end. Plastic or teflon ribs 14 extend radially inward
from the inside surface of the metal waveguide walls. The ribs 14, which extend along
the length of the applicator 10, are spaced apart circumferentially around the inner
circumference of the applicator. The plastic or teflon ribs 14 are transparent to
microwaves. The ribs extend radially inward a distance sufficient to bound a central
bore 16 through the heating chamber through which articles, such as individual cylindrical
items or a continuous cylindrical strand, can pass. The ribs 14 center and guide the
articles through the central bore 16.
[0007] A microwave source 17 injects microwaves 18, for example, at 915 MHz or 2540 MHz,
into the waveguide applicator 10 through a rectangular waveguide feed 20 at an entrance
end 22 of the applicator. The microwaves propagate along the waveguide applicator
10 from the entrance end 22 to an exit end 23. The microwaves travel through the interior
of the applicator 10 in a direction of propagation 24 parallel to the axis 25 of the
applicator. Microwave energy unabsorbed by the articles to be treated in the heating
chamber exits the exit end 23 through a rectangular waveguide segment 21 to a dummy
load 26, which prevents reflections back into the applicator. But it would also be
possible to operate without a dummy load and allow the microwave energy to reflect
back through the applicator 10 toward the entrance end 22 and, in that way, double
the effective length of the applicator. The shorter sides 27 of the rectangular waveguide
feed 20, which define the feed's E plane, are perpendicular to the axis 25 of the
applicator 10 to produce an electric field pattern in which the TE01 mode is dominant.
[0008] As shown in FIG. 5, the TE01 mode produces an electric field with circular symmetry
in the applicator 10 and with its maximum electric-field intensity midway between
the centerline and the cylindrical outer wall 11 of the applicator. This increased
field intensity between the center and the wall is indicated by the bolder and denser
arrows 28 concentrically circling the centerline in the electric-field pattern shown
in FIG. 5. The magnitude of the electric field at any position along the applicator
varies sinusoidally with the passing traveling microwave with reversals of direction
every half cycle. Because the field intensity is greatest near the inner ends 30 of
the guide ribs 14, the applicator 10 is especially useful in applications that require
the outer circumference of the cylindrical article to be heated.
[0009] As shown in FIG. 2, cylindrical articles 32 enter the vertically oriented applicator
10 at the upper end and fall through the applicator aided by gravity. The articles
32 advance through the applicator 10 in or opposite to the direction of propagation
24 of the microwaves. The articles could be advanced through the applicator by an
injected air stream instead of or in addition to gravity. As the articles fall, the
microwaves heat the outer portions. For large-diameter articles the central bore has
to be relatively large with respect to the cross-sectional dimensions of the waveguide
applicator 10. For that reason leakage of microwave energy through the large openings
at the ends 22, 23 of the applicator is reduced by two chokes 34, 42 at each end.
[0010] The chokes 34 closer to the applicator are reactive chokes that reflect microwave
energy back into the applicator. The reactive chokes 34 are positioned at the ends
22, 23 of the applicator 10. The reactive chokes 34 shown in FIG. 3 in more detail
are constructed of four metal circular waveguide segments 36, 37A, 37B, 38. Each segment
has a flange 40 at each end to attach to the flange of another segment, of the applicator
10, or of a choke box 42 (FIG. 1) with screws, for example. The left-most segment
38 in FIG. 3 is a flanged cylindrical metallic tube having a circular bore. The identical
interior metallic waveguide segments 37A, 37B are flanged at each end and have a stepped
bore formed by a small-diameter section 44 and a large-diameter section 45. The small-diameter
section 44 has the same inner diameter as the left-most segment 38. The right-most
segment 36 is the same as the interior segments 37A, 37B, except that the small-diameter
section 44' is elongated. A plastic or teflon microwave-transparent ring 46 having
the same inner diameter as the small-diameter sections 44, 44' is retained in the
large-diameter end of each interior waveguide segment 37A, 37B and the right-most
segment 36. When the waveguide segments are fastened to each other, the rings 46 are
clamped in place and form a continuous smooth bore with the small-diameter sections
44, 44' and the bore of the left-most segment 38. The smooth bore allows cylindrical
articles to pass through without snagging. Air gaps 48 are formed between the walls
of the large-diameter sections 45 and the rings 46. The air gaps 48 are spaced apart
axially on quarter-wavelength centers (about 2.9 cm at 2540 MHz). The quarter-wavelength
spacing of the steps in the waveguide's diameter provides choking that reduces the
leakage of microwave energy.
[0011] Because of the large opening required to accommodate large-diameter articles entering
and exiting the reactive chokes 34, the reactive chokes may not reduce leakage enough.
So resistive, absorbing choke boxes 42 (FIG. 1) are connected in series with the reactive
chokes 34. The resistive chokes 42 are shown in more detail in FIG. 4. The choke box
42 is shown as a rectangular box in FIG. 4, but it could be another shape, such as
circular or elliptic cylindrical. The dimensions of the choke box 42 are greater than
the diameter of the bore formed in a plastic or teflon tube 50 extending centrally
through the choke box. V-shaped, conductive metallic vanes 52 arranged in a chevron
pattern have central apertures 54 to receive the microwave-transparent tube 50 that
guides the articles centrally through the choke box 42. The vanes 52 are attached
at their opposite ends to one pair of side walls 56 of the choke box. Openings 57
in end walls 58 are aligned with central apertures 54 in the vanes to admit the tube
50 and guide articles centrally through the choke and into the applicator. The metallic
vanes are coated with a dielectric material, such as Eccosorb, that absorbs microwave
energy. Like the steps in the reactive chokes 34, the vanes are spaced apart in the
axial direction by a quarter of the wavelength of the microwave radiation. The combination
of the reactive and resistive chokes reduces the leakage to a level 60 dB below the
power level of the microwave source 17 (FIG. 1).
1. A microwave heating apparatus comprising:
a tubular waveguide applicator (10) having a cylindrical outer wall (11) terminating
in a first end (22) and an opposite second end (23) to form a heating chamber with
a circular cross section between the first and second ends (22, 23) with an axis (25)
along the centerline of the heating chamber;
a microwave source (17) supplying microwave energy into the tubular waveguide applicator
(10) to propagate microwaves through the tubular waveguide applicator from the first
end (22) to the second end (23); a first reactive choke (34) for reflecting microwave
energy back into the applicator disposed in series with the tubular waveguide applicator
at the first end (22) of the tubular waveguide applicator (10);
a second reactive choke (34) for reflecting microwave energy back into the applicator
(10) disposed in series with the tubular waveguide applicator (10) at the second end
(23) of the tubular waveguide applicator (10);
a first resistive choke (42) for absorbing microwave energy connected in series with
the tubular waveguide applicator and the first reactive choke (34); and
a second resistive choke (42) for absorbing microwave energy connected in series with
the tubular waveguide applicator (10) and the second reactive choke (34);
wherein the first reactive choke (34) is between the first resistive choke (42) and
the first end (22) of the tubular waveguide applicator (10) and the second reactive
choke (34) is disposed between the second resistive choke (42) and the second end
(23) of the tubular waveguide applicator (10)
characterized in that the microwaves are propagated through the tubular waveguide applicator with a dominant
TE
01 field pattern in the heating chamber.
2. A microwave heating apparatus as in claim 1 wherein the tubular waveguide (10) is
arranged with its axis vertical and articles (32) to be heated advance by gravity
through the heating chamber.
3. A microwave heating apparatus as in claim 1 wherein each of the first and second resistive
chokes includes a plurality of V-shaped conductive vanes (54) covered with a microwave-absorbent
material and spaced apart along the axis in a chevron pattern, wherein the V- shaped
conductive vanes have central apertures aligned with the heating chamber to pass articles
to be treated in the heating chamber through the first and second resistive chokes.
4. A microwave heating apparatus as in claim 3 further comprising microwave-transparent
tubes extending through the central apertures in the first and second resistive chokes
to guide articles to be heated in the heating chamber through the first and second
resistive chokes.
5. A microwave heating apparatus as in claim 1 further comprising a plurality of microwave-transparent
ribs (14) circumferentially spaced apart and extending inward from the cylindrical
outer wall (11) into the heating chamber to inner ends bounding a central bore to
guide articles (32) passing through the heating chamber.
1. Mikrowellenheizgerät, umfassend:
Einen rohrförmigen Wellenleiterapplikator (10) mit einer zylindrischen Außenwand (11),
die in einem ersten Ende (22) endet und einem entgegengesetzten Ende (23), um eine
Heizkammer mit einem kreisförmigen Querschnitt zwischen den ersten und zweiten Enden
(22, 23) mit einer Achse (25) entlang der Mittellinie der Heizkammer zu bilden;
eine Mikrowellenquelle (17), die Mikrowellenenergie zum rohrförmigen Wellenleiterapplikator
(10) liefert, um Mikrowellen durch den rohrförmigen Wellenleiterapplikator vom ersten
Ende (22) zum zweiten Ende (23) zu propagieren;
eine erste reaktive Drossel (34) zum Reflektieren der Mikrowellenenergie zurück in
den Applikator, die in Reihe mit dem rohrförmigen Wellenleiterapplikator am ersten
Ende (22) des rohrförmigen Wellenleiterapplikators (10) angeordnet ist;
eine zweite reaktive Drossel (34) zum Reflektieren der Mikrowellenenergie zurück in
den Applikator, die in Reihe mit dem rohrförmigen Wellenleiterapplikator (10) am zweiten
Ende (23) des rohrförmigen Wellenleiterapplikators (10) angeordnet ist;
eine erste Widerstandsdrossel (42) zum Absorbieren der Mikrowellenenergie, die in
Reihe mit dem rohrförmigen Wellenleiterapplikator und der ersten reaktiven Drossel
(34) verbunden ist; und
eine zweite Widerstandsdrossel (42) zum Absorbieren der Mikrowellenenergie, die in
Reihe mit dem rohrförmigen Wellenleiterapplikator (10) und der zweiten reaktiven Drossel
(34) verbunden ist; wobei die erste reaktive Drossel (34) zwischen der ersten Widerstandsdrossel
(42) und dem ersten Ende (22) des rohrförmigen Wellenleiterapplokators (10) liegt
und die zweite reaktive Drossel (34) zwischen der zweiten Widerstandsdrossel (42)
und dem zweiten Ende (23) des rohrförmigen Wellenleiterapplikators (10) angeordnet
ist,
dadurch gekennzeichnet, dass die Mikrowellen durch den rohrförmigen Wellenleiterapplikator mit einem dominanten
TE01 Feldmuster in der Heizkammer propagiert werden.
2. Mikrowellenheizgerät nach Anspruch 1, wobei die rohrförmige Wellenführung (10) mit
ihrer Achse vertikal angeordnet ist und zu erwärmende Artikel (32) durch Schwerkraft
durch die Heizkammer vorrücken.
3. Mikrowellenheizgerät nach Anspruch 1, wobei jede der ersten und zweiten Widerstandsdrosseln
eine Vielzahl von V-förmigen leitenden Flügeln (54) einschließt, die mit einem Mikrowellen
absorbierenden Material bedeckt und entlang der Achse in einem Fischgrätenmuster beabstandet
sind, wobei die V-förmigen leitenden Flügel mittige Öffnungen aufweisen, die mit der
Heizkammer fluchten, um in der Heizkammer zu behandelnde Artikel durch die ersten
und zweiten Widerstandsdrosseln zu leiten.
4. Mikrowellenheizgerät nach Anspruch 3, das ferner mikrowellentransparente Röhren umfasst,
die sich durch die mittigen Öffnungen in den ersten und zweiten Widerstandsdrosseln
erstrecken, um in der Heizkammer zu behandelnde Artikel durch die ersten und zweiten
Widerstandsdrosseln zu führen.
5. Mikrowellenheizgerät nach Anspruch 1, das ferner eine Vielzahl von mikrowellentransparenten
Rippen (14) umfasst, die umlaufend beabstandet sind und sich von der zylindrischen
Außenwand (11) nach innen gerichtet in die Heizkammer zu inneren Enden erstrecken,
die eine mittige Bohrung begrenzen, um Artikel (32) zu führen, welche die Heizkammer
durchlaufen.
1. Un appareil de chauffage par micro-ondes comprenant :
un applicateur de guide d'ondes tubulaire (10) ayant une paroi extérieure cylindrique
(11) se terminant par une première extrémité (22) et une deuxième extrémité opposée
(23) pour former une chambre de chauffage ayant une section transversale circulaire
entre les première et deuxième extrémités (22, 23) avec un axe (25) le long de la
ligne centrale de la chambre de chauffage ;
une source de micro-ondes (17) fournissant une énergie micro-ondes dans l'applicateur
de guide d'ondes tubulaire (10) pour propager des micro-ondes à travers l'applicateur
de guide d'ondes tubulaire de la première extrémité (22) à la deuxième extrémité (23)
;
un premier étranglement réactif (34) pour réfléchir l'énergie micro-ondes en retour
dans l'applicateur disposé en série avec l'applicateur de guide d'ondes tubulaire
à la première extrémité (22) de l'applicateur de guide d'ondes tubulaire (10) ;
un deuxième étranglement réactif (34) pour réfléchir l'énergie micro-ondes en retour
dans l'applicateur (10) disposé en série avec l'applicateur de guide d'ondes tubulaire
(10) à la deuxième extrémité (23) de l'applicateur de guide d'ondes tubulaire (10)
;
un premier étranglement résistif (42) pour absorber l'énergie micro-ondes connecté
en série avec l'applicateur de guide d'ondes tubulaire et le premier étranglement
réactif (34) ; et
un deuxième étranglement résistif (42) pour absorber l'énergie micro-ondes connecté
en série avec l'applicateur de guide d'ondes tubulaire (10) et le deuxième étranglement
réactif (34) ;
dans lequel le premier étranglement réactif (34) est entre le premier étranglement
résistif (42) et la première extrémité (22) de l'applicateur de guide d'ondes tubulaire
(10) et le deuxième étranglement réactif (34) est disposé entre le deuxième étranglement
résistif (42) et la deuxième extrémité (23) de l'applicateur de guide d'ondes tubulaire
(10)
caractérisé en ce que les micro-ondes sont propagées à travers l'applicateur de guide d'ondes tubulaire
avec un motif de champ TE01 dominant dans la chambre de chauffage.
2. Un appareil de chauffage par micro-ondes selon la revendication 1 dans lequel le guide
d'ondes tubulaire (10) est agencé avec son axe vertical et des articles (32) à chauffer
avancent par gravité à travers la chambre de chauffage.
3. Un appareil de chauffage par micro-ondes selon la revendication 1 dans lequel chacun
des premier et deuxième étranglements résistifs inclut une pluralité d'ailettes conductrices
en forme de V (54) recouvertes d'un matériau qui absorbe les micro-ondes et réparties
le long de l'axe dans un motif de chevrons, dans lequel les ailettes conductrices
en forme de V ont des ouvertures centrales alignées avec la chambre de chauffage pour
faire passer des articles à traiter dans la chambre de chauffage à travers les premier
et deuxième étranglements résistifs.
4. Un appareil de chauffage par micro-ondes selon la revendication 3 comprenant en outre
des tubes transparents aux micro-ondes s'étendant à travers les ouvertures centrales
dans les premier et deuxième étranglements résistifs pour guider des articles à chauffer
dans la chambre de chauffage à travers les premier et deuxième étranglements résistifs.
5. Un appareil de chauffage par micro-ondes selon la revendication 1 comprenant en outre
une pluralité de nervures transparentes aux micro-ondes (14) réparties circonférentiellement
et s'étendant vers l'intérieur depuis la paroi extérieure cylindrique (11) dans la
chambre de chauffage vers des extrémités intérieures délimitant un alésage central
pour guider des articles (32) passant à travers la chambre de chauffage.
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description